RMAIApr 28, 2024

Innovative Application of Artificial Intelligence Technology in Bank Credit Risk Management

arXiv:2404.18183v114 citationsh-index: 8International Journal of Global Economics and Management
Originality Synthesis-oriented
AI Analysis

This addresses credit risk management for commercial banks, but it appears incremental as it applies existing AI methods like deep learning and big data analysis to this domain.

The paper tackles the problem of credit risk management in commercial banks by applying artificial intelligence technology, resulting in more accurate credit evaluations, timely risk identification, and real-time monitoring to reduce losses.

With the rapid growth of technology, especially the widespread application of artificial intelligence (AI) technology, the risk management level of commercial banks is constantly reaching new heights. In the current wave of digitalization, AI has become a key driving force for the strategic transformation of financial institutions, especially the banking industry. For commercial banks, the stability and safety of asset quality are crucial, which directly relates to the long-term stable growth of the bank. Among them, credit risk management is particularly core because it involves the flow of a large amount of funds and the accuracy of credit decisions. Therefore, establishing a scientific and effective credit risk decision-making mechanism is of great strategic significance for commercial banks. In this context, the innovative application of AI technology has brought revolutionary changes to bank credit risk management. Through deep learning and big data analysis, AI can accurately evaluate the credit status of borrowers, timely identify potential risks, and provide banks with more accurate and comprehensive credit decision support. At the same time, AI can also achieve realtime monitoring and early warning, helping banks intervene before risks occur and reduce losses.

Foundations

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